文件名称:Thalur-coloue-suggesatial
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by traditional level set based segmentation models. In this paper, we propose a new level set
method integrating local and global intensity information adaptively to segment inhomogeneous images. The
local image information is associated with the intensity difference between the average of local intensity distribution
and the original image,which can significantly increase the contrast between foreground and background.
Thus, the images with intensity inhomogeneity can be efficiently segmented. What is more, to avoid the reinitialization
of the level set function and shorten the computational time, a simple and fast level set evolution
formulation is used in the numerical implementation. Experimental results on synthetic images as well as real
medical images are shown in the paper to demonstrate the efficiency and robustness of the proposed method
method integrating local and global intensity information adaptively to segment inhomogeneous images. The
local image information is associated with the intensity difference between the average of local intensity distribution
and the original image,which can significantly increase the contrast between foreground and background.
Thus, the images with intensity inhomogeneity can be efficiently segmented. What is more, to avoid the reinitialization
of the level set function and shorten the computational time, a simple and fast level set evolution
formulation is used in the numerical implementation. Experimental results on synthetic images as well as real
medical images are shown in the paper to demonstrate the efficiency and robustness of the proposed method
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下载文件列表
1-s2.0-S0262885609001334-main.pdf
1-s2.0-S0262885613001297-main.pdf
1-s2.0-S0895611109000494-main.pdf